Affiliation:
1. Department of Chemical Engineering, Indian Institute of Technology Bombay, Powai, Mumbai 400076, India
2. National Centre for Biological Sciences, GKVK, Bellary Road, Bangalore 560065, India
Abstract
Evolution facilitates emergence of fitter phenotypes by efficient allocation of cellular resources in conjunction with beneficial mutations. However, system-wide pleiotropic effects that redress the perturbations to the apex node of the transcriptional regulatory networks remain unclear. Here, we elucidate that absence of global transcriptional regulator CRP in
Escherichia coli
results in alterations in key metabolic pathways under glucose respiratory conditions, favouring stress- or hedging-related functions over growth-enhancing functions. Further, we disentangle the growth-mediated effects from the CRP regulation-specific effects on these metabolic pathways. We quantitatively illustrate that the loss of CRP perturbs proteome efficiency, as evident from metabolic as well as ribosomal proteome fractions, that corroborated with intracellular metabolite profiles. To address how
E. coli
copes with such systemic defect, we evolved
Δcrp
mutant in the presence of glucose. Besides acquiring mutations in the promoter of glucose transporter
ptsG
, the evolved populations recovered the metabolic pathways to their pre-perturbed state coupled with metabolite re-adjustments, which altogether enabled increased growth. By contrast to
Δcrp
mutant, the evolved strains remodelled their proteome efficiency towards biomass synthesis, albeit at the expense of carbon efficiency. Overall, we comprehensively illustrate the genetic and metabolic basis of pleiotropic effects, fundamental for understanding the growth physiology.
Funder
Department of Science and Technology, Government of India, WOSA
Department of Biotechnology, Ministry of Science and Technology
DBT-Wellcome Trust India Alliance
Department of Science and Technology, Government of India
Subject
General Biochemistry, Genetics and Molecular Biology,Immunology,General Neuroscience
Cited by
9 articles.
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